Characterization of coatings obtained on aluminum alloy 6061 during soft sparking PEO in solid particles suspension

Plasma electrolytic oxidation (PEO) is a relatively novel method of obtaining thick and durable ceramic coatings on top of valve metals, such as aluminum and its alloys. A combination of electrochemical and thermochemical processes during PEO enables the incorporation of species present in the electrolyte inside the coating. In this systematic study, 6061 aluminum alloy was subjected to plasma electrolytic oxidation in solutions containing yttria-stabilized zirconia (ZrO 2 ), anatase (TiO 2 ), corundum (α-Al 2 O 3 ), and amorphous silica (SiO 2 ) under soft sparking regime (SSR). The electrolytes were modified by adding solid particle suspensions at concentrations of 3, 7, and 10 g L −1 . The aim was to enhance both corrosion resistance and mechanical strength. The resulting coatings were examined for surface morphology, phase composition, microhardness, tribological performance, and corrosion resistance. The results confirmed that particles can be incorporated into the coating during SSR, giving rise to distinct surface morphologies, higher hardness (from 862 ± 220 HV 0.05 for the base electrolyte to 1305 ± 298 HV 0.05 for the 3 g L −1 ZrO 2 variant), lower wear rate (from 70.97 ± 1.33 µm for the base electrolyte to 36.07 ± 0.82 µm for the 3 g L −1 TiO 2 variant at a load of 10 N), and improved corrosion resistance (charge-transfer resistances measured for the 10 g L −1 Al 2 O 3 bath increased by an order of magnitude compared to the Blank sample). The best outcomes were observed at the lowest particles loading (3 g L −1 ) for the SiO 2 - and ZrO 2 -enriched coatings. Higher concentrations were found to be optimal for the electrolytes containing Al 2 O 3 (10 g L −1 ) and TiO 2 (7 g/L −1 ).

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Journal
Advanced Composites and Hybrid Materials
Published
2026-09-29
DOI
https://doi.org/10.1007/s42114-026-02089-8
Primary Topic
Magnesium Alloys: Properties and Applications
Type
article
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Characterization of coatings obtained on aluminum alloy 6061 during soft sparking PEO in solid particles suspension

Grzegorz Dzido, Łukasz Major, Aleksander Olesiński, Maciej Bik et al.
Advanced Composites and Hybrid Materials
Magnesium Alloys: Properties and Applications
article

Characterization of coatings obtained on aluminum alloy 6061 during soft sparking PEO in solid particles suspension

Grzegorz Dzido, Łukasz Major, Aleksander Olesiński, Maciej Bik, Izabela Matuła, Maciej Sowa, Sławomir Kaptacz, Zofia Kucia, Marta Wala, Grzegorz Dercz, Mateusz Niedźwiedź, Artur Maciej, Wojciech Simka, Xiaopeng Lu
article en

Abstract

Plasma electrolytic oxidation (PEO) is a relatively novel method of obtaining thick and durable ceramic coatings on top of valve metals, such as aluminum and its alloys. A combination of electrochemical and thermochemical processes during PEO enables the incorporation of species present in the electrolyte inside the coating. In this systematic study, 6061 aluminum alloy was subjected to plasma electrolytic oxidation in solutions containing yttria-stabilized zirconia (ZrO 2 ), anatase (TiO 2 ), corundum (α-Al 2 O 3 ), and amorphous silica (SiO 2 ) under soft sparking regime (SSR). The electrolytes were modified by adding solid particle suspensions at concentrations of 3, 7, and 10 g L −1 . The aim was to enhance both corrosion resistance and mechanical strength. The resulting coatings were examined for surface morphology, phase composition, microhardness, tribological performance, and corrosion resistance. The results confirmed that particles can be incorporated into the coating during SSR, giving rise to distinct surface morphologies, higher hardness (from 862 ± 220 HV 0.05 for the base electrolyte to 1305 ± 298 HV 0.05 for the 3 g L −1 ZrO 2 variant), lower wear rate (from 70.97 ± 1.33 µm for the base electrolyte to 36.07 ± 0.82 µm for the 3 g L −1 TiO 2 variant at a load of 10 N), and improved corrosion resistance (charge-transfer resistances measured for the 10 g L −1 Al 2 O 3 bath increased by an order of magnitude compared to the Blank sample). The best outcomes were observed at the lowest particles loading (3 g L −1 ) for the SiO 2 - and ZrO 2 -enriched coatings. Higher concentrations were found to be optimal for the electrolytes containing Al 2 O 3 (10 g L −1 ) and TiO 2 (7 g/L −1 ).

Advanced Composites and Hybrid Materials
Silesian University of Technology (PL), Institute of Metallurgy and Materials Science (PL), AGH University of Krakow (PL), University of Silesia in Katowice (PL), University of Latvia (LV), Northeastern University (CN), Polish Academy of Sciences (PL)
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Openalex Percentile: Top 23%
Magnesium Alloys: Properties and Applications
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